Two-Dimensional Helioseismic Power, Phase, and Coherence Spectra of {\it Solar Dynamics Observatory} Photospheric and Chromospheric Observables
Rachel Howe, Kiran Jain, Richard S. Bogart, Deborah A.Haber, Charles, S. Baldner

TL;DR
This study analyzes the spatio-temporal Fourier spectra of various solar observables from SDO to understand wave behavior and magnetic interactions in active regions across different atmospheric layers.
Contribution
It provides a detailed comparison of power, phase, and coherence spectra across multiple observables, revealing complex wave-magnetic field interactions in the photosphere and chromosphere.
Findings
Five-minute oscillation power is suppressed in sunspots and plages.
Power behavior above the acoustic cut-off varies with magnetic field presence.
Phase and coherence are significantly altered around active regions.
Abstract
While the {\it Helioseismic and Magnetic Imager} (HMI) onboard the {\it Solar Dynamics Observatory} (SDO) provides Doppler velocity [], continuum intensity [], and line-depth [] observations, each of which is sensitive to the five-minute acoustic spectrum, the {\it Atmospheric Imaging Array} (AIA) also observes at wavelengths -- specifically the 1600 and 1700 Angstrom bands -- that are partly formed in the upper photosphere and have good sensitivity to acoustic modes. In this article we consider the characteristics of the spatio--temporal Fourier spectra in AIA and HMI observables for a 15-degree region around NOAA Active Region 11072. We map the spatio--temporal-power distribution for the different observables and the HMI Line Core [], or Continuum minus Line Depth, and the phase and coherence functions for selected observable pairs, as a function of position and…
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